Open Access
Issue |
E3S Web Conf.
Volume 111, 2019
CLIMA 2019 Congress
|
|
---|---|---|
Article Number | 03062 | |
Number of page(s) | 8 | |
Section | High Energy Performance and Sustainable Buildings | |
DOI | https://doi.org/10.1051/e3sconf/201911103062 | |
Published online | 13 August 2019 |
- Reinhart, C. F., Mardaljevic, J., Rogers, Z. Dynamic daylight performance metrics for sustainable building design. LEUKOS - Journal of Illuminating Engineering Society of North America, 2006, 3 (1), 7–31. [Google Scholar]
- Bian, Y., Ma, Y. Analysis of daylight metrics of side-lit room in Canton, south China: A comparison between daylight autonomy and daylight factor. Energy and Buildings, 2017, 138, 347–354. [CrossRef] [Google Scholar]
- Lo Verso, V.R.M., Mihaylov, G., Pellegrino, A., Pellerey, F. Estimation of the daylight amount and the energy demand for lighting for the early design stages: Definition of a set of mathematical models. Energy and Buildings, 2017, 155, 151–165. [CrossRef] [Google Scholar]
- Castaldo, V.L., Pisello, A.L. Uses of dynamic simulation to predict thermal-energy performance of buildings and districts: A review. Wiley Interdisciplinary Reviews: Energy and Environment, 2018, 7 (1), e269-n/a. [Google Scholar]
- Reinhart, C.F., Walkenhorst, O. Validation of dynamic RADIANCE-based daylight simulations for a test office with external blinds. Energy and Buildings, 2001, 33 (7), 683–697. [CrossRef] [Google Scholar]
- Schulze, T., Eicker, U. Controlled natural ventilation for energy efficient buildings. Energy and Buildings, 2013, 56, 221–232. [CrossRef] [Google Scholar]
- Oropeza-Perez, I., Østergaard, P.A. Potential of natural ventilation in temperate countries - A case study of Denmark. Applied Energy, 2014, 114, 520–530. [CrossRef] [Google Scholar]
- Oropeza-Perez, I., Østergaard, P.A. Energy saving potential of utilizing natural ventilation under warm conditions - A case study of Mexico. Applied Energy, 2014, 130, 20–32. [CrossRef] [Google Scholar]
- Zhai, Z., Mankibi, M.E., Zoubir, A. Review of Natural Ventilation Models. Energy Procedia, 2015, 78, 2700–2705. [CrossRef] [Google Scholar]
- Chenari, B., Dias Carrilho, J., Gameiro da Silva, M. Towards sustainable, energy-efficient and healthy ventilation strategies in buildings: A review. Renewable and Sustainable Energy Reviews, 2016, 59, 1426–1447. [CrossRef] [Google Scholar]
- Tong, Z., Chen, Y., Malkawi, A., Liu, Z. Freeman, R.B. Energy saving potential of natural ventilation in China: The impact of ambient air pollution. Applied Energy, 2016, 179, 660–668. [CrossRef] [Google Scholar]
- Campaniço, H., Soares, P.M.M., Hollmuller, P., Cardoso, R.M. Climatic cooling potential and building cooling demand savings: High resolution spatiotemporal analysis of direct ventilation and evaporative cooling for the Iberian Peninsula, Renewable Energy, 2016, 85, 766–776. [CrossRef] [Google Scholar]
- Nomura, M., Hiyama, K. A review: Natural ventilation performance of office buildings in Japan. Renewable and Sustainable Energy Reviews, 2017,74 (Supplement C), 746-754. [Google Scholar]
- Aflaki, A., Mahyuddin, N., Al-Cheikh Mahmoud, Z., Baharum, M.R. A review on natural ventilation applications through building façade components and ventilation openings in tropical climates. Energy and Buildings, 2015, 101, 153–162. [CrossRef] [Google Scholar]
- Elharidi, A.M., Tuohy, P.G., Teamah, M.A. The energy and indoor environmental performance of Egyptian offices: Parameter analysis and future policy. Energy and Buildings, 2018, 158, 431–452. [CrossRef] [Google Scholar]
- Daaboul, J., Ghali, K., Ghaddar, N. Mixed-mode ventilation and air conditioning as alternative for energy savings: A case study in Beirut current and future climate. Energy Efficiency, 2018, 11 (1), 13–30. [CrossRef] [Google Scholar]
- Lan, L., Tushar, W., Otto, K., Yuen, C., Wood, K.L. Thermal comfort improvement of naturally ventilated patient wards in Singapore. Energy and Buildings, 2017, 154, 499–512. [CrossRef] [Google Scholar]
- Hussain, S., Oosthuizen, P.H. Numerical investigations of buoyancy-driven natural ventilation in a simple three-storey atrium building and thermal comfort evaluation. Applied Thermal Engineering, 2013, 57 (1), 133–146. [CrossRef] [Google Scholar]
- BSi, BS EN 15251 Indoor environmental input parameters for design and assessment of energy performance of buildings addressing indoor air quality, thermal environment, lighting and acoustics. in: Evaluation of the indoor environment and long term indicators, BSI publications, London, 2007. [Google Scholar]
- Olesen, B.W. Revision of EN 15251: Indoor Environmental Criteria, REHVA Journal, 2012, 49 (4), 6–12. [Google Scholar]
- Architectural_Institute_of_Japan, Natural Ventilation Design Handbook for Architects and Building Engineers. GIHODO SHUPPAN, 2017. [Google Scholar]
- Vitale, V., Salerno, G. A numerical prediction of the passive cooling effects on thermal comfort for a historical building in Rome. Energy and Buildings, 2017, 157, 1–10. [CrossRef] [Google Scholar]
- Chen, X., Yang, H., Zhang, W. Simulation-based approach to optimize passively designed buildings: A case study on a typical architectural form in hot and humid climates. Renewable and Sustainable Energy Reviews, 2018, 82, 1712–1725. [CrossRef] [Google Scholar]
- de Dear, R.J., Brager, G.S. Thermal comfort in naturally ventilated buildings: Revisions to ASHRAE Standard 55. Energy and Buildings, 2002, 34 (6), 549–561. [CrossRef] [Google Scholar]
- Emmerich, S.J., Polidoro, B., Axley, J.W. Impact of adaptive thermal comfort on climatic suitability of natural ventilation in office buildings. Energy and Buildings, 2011, 43 (9), 2101–2107. [CrossRef] [Google Scholar]
- Nezamdoost, A., Van den Wymelenberg, K.G. Revisiting the Daylit Area: Examining Daylighting Performance Using Subjective Human Evaluations and Simulated Compliance with the LEED Version 4 Daylight Credit. Leukos, 2017, 13 (2), 107–123. [CrossRef] [Google Scholar]
- Calautit, J.K., Hughes, B.R., Nasir, D.S.N.M. Climatic analysis of a passive cooling technology for the built environment in hot countries. Applied Energy, 2017, 186, 321-335. [CrossRef] [Google Scholar]
- Yu, T., Heiselberg, P., Lei, B., Zhang C., Pomianowski, M., Jensen, R. Experimental study on the dynamic performance of a novel system combining natural ventilation with diffuse ceiling inlet and TABS. Applied Energy, 2016, 169, 218–229. [CrossRef] [Google Scholar]
- Taengchum, T., Chirarattananon, S., Exell, R.H.B., Kubaha, K. Chaiwiwatworakul, P. A study on a ventilation stack integrated with a light pipe. Applied Thermal Engineering, 2013, 50 (1), 546-554. [CrossRef] [Google Scholar]
- Chen, X., Yang, H. A multi-stage optimization of passively designed high-rise residential buildings in multiple building operation scenarios. Applied Energy, 2017, 206, 541–557. [CrossRef] [Google Scholar]
- Levitt, B., Ubbelohde, M.S., Loisos, G., Brown, N. Thermal Autonomy as Metric and Design Process. in: Pushing the Boundaries: Net positive Buildings, SB13 Vancouver, Vancouver, 2013, pp. 47-58. [Google Scholar]
- Wang, L.-S., Ma, P., Hu, E., Giza-Sisson, D., Mueller, G., Guo, N. A study of building envelope and thermal mass requirements for achieving thermal autonomy in an office building. Energy and Buildings, 2014, 78, 79–88. [Google Scholar]
- Ma, P., Wang, L.-S., Guo, N. Maximum window-towall ratio of a thermally autonomous building as a function of envelope U-value and ambient temperature amplitude. Applied Energy, 2015, 146, 84–91. [CrossRef] [Google Scholar]
- AIA, An Architect's Guide to Integrating Energy Modeling in the Design Process. In: The American Institute of Architects, 2012, p. 8. [Google Scholar]
- Hiyama, K., Glicksman, L. Preliminary design method for naturally ventilated buildings using target air change rate and natural ventilation potential maps in the United States. Energy, 2015, 89 (Supplement C), 655-666. [CrossRef] [Google Scholar]
- ZEB_Roadmap_Followup_Commitee, ZEB design guideline, in, 2017. [Google Scholar]
- Orme, M., Liddament, M.W., Wilson, A. Numerical data for air infiltration and natural ventilation calculations. Air Infiltration and Ventilation Centre, 1998. [Google Scholar]
- ASHRAE, ASHRAE Standard 55 - Thermal environment conditions for human occupancy. In: ASHRAE Inc., Atlanta, 2010 [Google Scholar]
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